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Updated: Jun 29, 2025

Assaying Proteasomal Degradation in a Cell-free System in Plants
Published on: March 26, 2014
The role of proteasomes in tumorigenesis
Xiangyi Zhou1,2, Ruqing Xu1, Yue Wu1
1Department of Oncology, The First Affiliated Hospital of Chongqing Medical University, Chongqing 400016, China.
Abstract:
Protein homeostasis is the basis of normal life activities, and the proteasome family plays an extremely important function in this process. The proteasome 20S is a concentric circle structure with two α rings and two β rings overlapped. The proteasome 20S can perform both ATP-dependent and non-ATP-dependent ubiquitination proteasome degradation by binding to various subunits (such as 19S, 11S, and 200 PA), which is performed by its active subunit β1, β2, and β5. The proteasome can degrade misfolded, excess proteins to maintain homeostasis. At the same time, it can be utilized by tumors to degrade over-proliferate and unwanted proteins to support their growth. Proteasomes can affect the development of tumors from several aspects including tumor signaling pathways such as NF-κB and p53, cell cycle, immune regulation, and drug resistance. Proteasome-encoding genes have been found to be overexpressed in a variety of tumors, providing a potential novel target for cancer therapy. In addition, proteasome inhibitors such as bortezomib, carfilzomib, and ixazomib have been put into clinical application as the first-line treatment of multiple myeloma. More and more studies have shown that it also has different therapeutic effects in other tumors such as hepatocellular carcinoma, non-small cell lung cancer, glioblastoma, and neuroblastoma. However, proteasome inhibitors are not much effective due to their tolerance and singleness in other tumors. Therefore, further studies on their mechanisms of action and drug interactions are needed to investigate their therapeutic potential.
Insights
The proteasome maintains protein balance and is crucial in cancer. While proteasome inhibitors show promise in treating multiple myeloma and other cancers, further research is needed to overcome resistance and improve efficacy.
Area of Science:
- Molecular Biology
- Biochemistry
- Oncology
Background:
- Protein homeostasis, essential for life, relies on the proteasome family.
- The 20S proteasome, a multi-ring structure, degrades proteins via various subunits.
- Dysregulation of proteasome function is implicated in tumor growth and progression.
Purpose of the Study:
- To review the role of proteasomes in cancer development.
- To explore the therapeutic potential of proteasome inhibitors in various cancers.
- To identify challenges and future directions for proteasome-targeted cancer therapy.
Main Methods:
- Literature review of proteasome function in cancer.
- Analysis of proteasome inhibitor efficacy in preclinical and clinical studies.
- Examination of resistance mechanisms and drug interactions.
Main Results:
- Proteasomes influence tumor signaling, cell cycle, immunity, and drug resistance.
- Proteasome inhibitors are effective in multiple myeloma and show potential in other cancers.
- Tumor cells exploit proteasomes for growth, making them a therapeutic target.
Conclusions:
- Proteasome inhibitors offer a promising avenue for cancer therapy.
- Overcoming resistance and understanding drug interactions are critical for broader application.
- Further research is essential to optimize proteasome-targeted treatments for diverse cancers.
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